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Advanced Photocatalysts Based on Reduced Nanographene Oxide–TiO2 Photonic Crystal Films

机译:还原型氧化石墨烯-TiO2光子晶体薄膜的先进光催化剂

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摘要

Surface functionalization of TiO2 inverse opals by graphene oxide nanocolloids (nanoGO) presents a promising modification for the development of advanced photocatalysts that combine slow photon-assisted light harvesting, surface area, and mass transport of macroporous photonic structures with the enhanced adsorption capability, surface reactivity, and charge separation of GO nanosheets. In this work, post-thermal reduction of nanoGO–TiO2 inverse opals was investigated in order to explore the role of interfacial electron transfer vs. pollutant adsorption and improve their photocatalytic activity. Photonic band gap-engineered TiO2 inverse opals were fabricated by the coassembly technique and were functionalized by GO nanosheets and reduced under He at 200 and 500 °C. Comparative performance evaluation of the nanoGO–TiO2 films on methylene blue photodegradation under UV-VIS and visible light showed that thermal reduction at 200 °C, in synergy with slow photon effects, improved the photocatalytic reaction rate despite the loss of nanoGO and oxygen functional groups, pointing to enhanced charge separation. This was further supported by photoluminescence spectroscopy and salicylic acid UV-VIS photodegradation, where, in the absence of photonic effects, the photocatalytic activity increased, confirming that fine-tuning of interfacial coupling between TiO2 and reduced nanoGO is a key factor for the development of highly efficient photocatalytic films.
机译:氧化石墨烯纳米胶体(nanoGO)对TiO2反蛋白石的表面功能化为开发先进的光催化剂提出了有希望的改进,该催化剂将慢速光子辅助的光收集,表面积和大孔光子结构的质量传输与增强的吸附能力,表面反应性结合在一起,以及GO纳米片的电荷分离。在这项工作中,研究了纳米GO-TiO2反蛋白石的热还原后,以探索界面电子转移与污染物吸附的作用并提高其光催化活性。通过共组装技术制造了光子带隙工程化的TiO2反蛋白石,并通过GO纳米片将其功能化,并在200和500°C的He下还原。在UV-VIS和可见光下对亚甲基蓝光降解的nanoGO-TiO2薄膜的比较性能评估表明,尽管失去了nanoGO和氧官能团,但在200°C下的热还原与缓慢的光子效应协同作用仍提高了光催化反应速率。 ,指向增强的电荷分离。光致发光光谱法和水杨酸UV-VIS光降解进一步支持了这一点,其中在没有光子效应的情况下,光催化活性增加,这证实了TiO2和还原的nanoGO之间的界面偶联的微调是形成纳米二氧化钛的关键因素。高效的光催化膜。

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